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101. Ignat’ev NV, Welz-Biermann U, Kucheryna A, Bissky G, Willner H (2005) New ionic liquids
with tris(perfluoroalkyl)trifluorophosphate (FAP) anions. J Fluorine Chem 126:1150–1159.
https://doi.org/10.1016/j.jfluchem.2005.04.017
102. Ignat’ev NV, Pitner W-R, Welz-Biermann U (2007) Synthesis and application of new ionic liquids with tris(perfluoroalkyl)trifluorophosphate anions. ACS Symp Ser 950:281–287. https://
doi.org/10.1021/bk-2007-0950.ch022
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105. Basionics ™ and Basil ™ . Ionic liquids—Solutions for Your Success (2005) CZ 0510-06/05,
BASF SE, Ludwigshafen
106. Freemantle M (2003) BASF’s smart ionic liquid. Process scavenges acid on a large scale
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p009
107. Maase M (2004) Erstes technisches Verfahren mit ionischen Flüssigkeiten. Chem unserer Zeit
38:434–435. https://doi.org/10.1002/ciuz.200490093
108. Maase M (2008) Industrial applications of ionic liquids. In: Wasserscheid P, Welton T (eds)
Ionic liquids in synthesis, 2nd edn. Wiley-VCH, Weinheim, pp 663–687. https://doi.org/10.
1002/9783527621194.ch9
109. Saling P, Maase M, Vagt U (2010) Eco-efficiency analysis of an industrially implemented ionic
liquid-based process—the BASF BASIL process. In: Anastas PT (ed) Handbook of green
chemistry, green solvents, vol 6; Wasserscheid P, Stark A (eds) Ionic liquids, Wiley-VCH,
Weinheim, pp 299–314. https://doi.org/10.1002/9783527628698.hgc070
110. Maase M (2005) BASIL ™ process. In: Cornils B, Herrmann WA, Horváth IT, Leitner W,
Mecking S, Olivier-Bourbigou H, Vogt D (eds) Multiphase homogeneous catalysis, vol 2.
Wiley-VCH, Weinheim, pp 560–566. https://doi.org/10.1002/9783527619597.ch5c
